Tanous Catherine, Soutourina Olga, Raynal Bertrand, Hullo Marie-Françoise, Mervelet Peggy, Gilles Anne-Marie, Noirot Philippe, Danchin Antoine, England Patrick, Martin-Verstraete Isabelle
Institut Pasteur, UnitédeGénétique des Génomes Bactériens, Plate-forme de Biophysique des Macromolécules et de leurs Interactions, 75724 Paris cedex 15, France.
J Biol Chem. 2008 Dec 19;283(51):35551-60. doi: 10.1074/jbc.M805951200. Epub 2008 Oct 29.
Several enzymes have evolved as sensors in signal transduction pathways to control gene expression, thereby allowing bacteria to adapt efficiently to environmental changes. We recently identified the master regulator of cysteine metabolism in Bacillus subtilis, CymR, which belongs to the poorly characterized Rrf2 family of regulators. We now report that the signal transduction mechanism controlling CymR activity in response to cysteine availability involves the formation of a stable complex with CysK, a key enzyme for cysteine biosynthesis. We carried out a comprehensive quantitative characterization of this regulator-enzyme interaction by surface plasmon resonance and analytical ultracentrifugation. We also showed that O-acetylserine plays a dual role as a substrate of CysK and as an effector modulating the CymR-CysK complex formation. The ability of B. subtilis CysK to bind to CymR appears to be correlated to the loss of its capacity to form a cysteine synthase complex with CysE. We propose an original model, supported by the determination of the intracellular concentrations of the different partners, by which CysK positively regulates CymR in sensing the bacterial cysteine pool.
几种酶已进化成为信号转导途径中的传感器,以控制基因表达,从而使细菌能够有效地适应环境变化。我们最近在枯草芽孢杆菌中鉴定出了半胱氨酸代谢的主要调节因子CymR,它属于特征描述较少的Rrf2调节因子家族。我们现在报告,响应半胱氨酸可用性而控制CymR活性的信号转导机制涉及与CysK形成稳定复合物,CysK是半胱氨酸生物合成的关键酶。我们通过表面等离子体共振和分析超速离心对这种调节因子 - 酶相互作用进行了全面的定量表征。我们还表明,O - 乙酰丝氨酸作为CysK的底物以及调节CymR - CysK复合物形成的效应物发挥双重作用。枯草芽孢杆菌CysK与CymR结合的能力似乎与其与CysE形成半胱氨酸合酶复合物的能力丧失相关。我们提出了一个原始模型,该模型得到了不同伙伴细胞内浓度测定的支持,通过该模型,CysK在感知细菌半胱氨酸库时对CymR起到正向调节作用。